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Comparison between Support Vector Machine and Random Forest for Hepatocellular Carcinoma (HCC) Classification

机译:肝细胞癌(HCC)分类支持向量机与随机林的比较

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Hepatocellular Carcinoma (HCC) is a type of liver cancer which occurs when a tumor grows malignantly in the liver. This cancer starts from the liver and is not caused by the spread of cancer from other organs. HCC commonly occurs due to the complications of liver disease. However, most patients do not show signs and symptoms in the early stage of liver cancer. Therefore, classification with high accuracy is needed to predict individuals with HCC early, based on their data and to provide them with the best treatment. In this study, the data used consisted of 192 samples with 66 HCC and 126 non-HCC samples, which were obtained from Al Islam Bandung Hospital. Many machine learning methods have been used to carry out classification. Among these methods, Support Vector Machine (SVM) and Random Forest (RF) have been frequently used due to their high level of performance. Therefore, in this study, SVM and RF were compared and analyzed for the classification of HCC. The aim of this study was to discover which method has the best accuracy to classify HCC. The results showed that SVM and RF had the highest accuracy value at 90% and 100% respectively. Therefore, RF method is a better model compared to SVM and suggested to be used in the classification of HCC.
机译:肝细胞癌(HCC)是一种肝癌的一种肝癌,当肿瘤在肝脏中肿瘤生长时发生。这种癌症从肝脏开始,而不是由其他器官的癌症传播引起的。 HCC常常由于肝病的并发症而发生。然而,大多数患者在肝癌早期没有显示出症状和症状。因此,需要高精度的分类来预测HCC早期的单个,并根据其数据提供HCC,并为它们提供最佳处理。在这项研究中,使用的数据由192个样品组成,具有66个HCC和126个非HCC样本,该样本是从Al Islam Bandung医院获得的。许多机器学习方法已被用于进行分类。在这些方法中,由于它们的高性能而经常使用支持向量机(SVM)和随机森林(RF)。因此,在该研究中,比较SVM和RF并分析HCC的分类。本研究的目的是发现哪种方法具有对HCC进行分类的最佳准确性。结果表明,SVM和RF分别为90%和100%的最高精度值。因此,与SVM相比,RF方法是更好的模型,并建议用于HCC的分类。

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